收稿日期: 2024-06-28
网络出版日期: 2024-12-16
基金资助
国家自然科学基金项目(81860802);江西省自然科学基金项目(20202BABL206140);江西中医药大学校级科技创新团队发展计划
Effect of mangiferin on differentiation of bone marrow mesenchymal stem cells induced by homocysteine
Received date: 2024-06-28
Online published: 2024-12-16
目的 旨在利用同型半胱氨酸(Hcy)构建体外培养原代大鼠骨髓间充质干细胞(rBMSCs)脂向分化模型,剖析Hcy对BMSCs脂向分化与骨向分化的具体作用,对Hcy诱导的BMSCs施加不同浓度的芒果苷进行干预,探究芒果苷对BMSCs 脂向分化与骨向分化的影响。 方法 首先提取分离rBMSCs,将培养至一定代数状态良好的rBMSCs置于含不同浓度Hcy(0.125、0.250、0.5、1、2、4 mmol/L)的培养基中培养,建立rBMSCs脂向分化模型。随后,对实验组细胞施加不同浓度的芒果苷(37.5、75、150 μmol/L)进行干预。培养一定时间后,收集细胞进行以下检测:运用油红O染液半定量方法检测细胞内脂质累积情况,以评估脂向分化程度;采用ρNPP法精准测定碱性磷酸酶(ALP)活力;Western blot法检测骨形成蛋白-2(BMP-2)、Ⅰ型胶原(ColⅠ)的表达变化,以评估骨向分化程度。 结果 芒果苷在体外能显著上调BMP-2、ColⅠ的表达,升高ALP水平,促进rBMSCs的骨向分化。Hcy则通过增加脂质累积,促进rBMSCs的脂向分化;与此同时,Hcy还下调BMP-2与ColⅠ的表达,降低胞内ALP水平,从而抑制rBMSCs的骨向分化。然而,上述与Hcy相关的效应能够被芒果苷成功扭转。 结论 芒果苷在体外能够显著促进rBMSCs的骨向分化,而Hcy可抑制rBMSCs骨向分化并促进其脂向分化,芒果苷具有扭转该效应的能力,说明芒果苷在治疗骨质疏松症相关疾病方面具有一定潜能。
巢素珍 , 周年 , 石心怡 , 周怡丽 , 夏俊杰 , 刘波 , 任明诗 , 李子涵 . 芒果苷对同型半胱氨酸诱导骨髓间充质干细胞分化的影响[J]. 实用医学杂志, 2024 , 40(23) : 3284 -3290 . DOI: 10.3969/j.issn.1006-5725.2024.23.002
Objective To establish a lipid differentiation model of primary rat bone marrow mesenchymal stem cells (rBMSCs) in vitro using homocysteine (Hcy), and analyze the specific effects of Hcy on lipid and bone differentiation of BMSCs; to comprehensively explore the effects of mangiferin on lipid and bone differentiation of BMSCs, and further reveal the potential mechanism of mangiferin in the treatment of osteoporosis through the intervention of Hcy-induced BMSCs by different concentrations of mangiferin. Methods First, rBMSCs were extracted and isolated. The rBMSCs that were well-cultured to a certain generation were placed in culture medium containing different concentrations of Hcy (0.125, 0.250, 0.5, 1, 2, 4 mmol/L) to establish lipid differentiation model of rBMSCs. Then, different concentrations of mangiferin (37.5, 75, 150 μmol/L) were applied to the experimental cells for intervention. After culture for a certain period of time, the cells were collected for the following tests: The accumulation of lipids in the cells was detected by semi-quantitative method of oil red O dye solution to evaluate the degree of lipid differentiation; The activity of alkaline phosphatase (ALP) was measured by ρNPP method; The expression of bone morphogenetic protein-2 (BMP-2) and type I collagen (ColⅠ) were detected by western blot assay to evaluate the degree of bone differentiation. Results Mangiferin could significantly up-regulate the expression of BMP-2 and ColⅠ in vitro, increase the level of ALP, and promote bone differentiation of rBMSCs. Hcy promoted lipid differentiation of rBMSCs by increasing lipid accumulation, and down-regulated the expression of BMP-2 and ColⅠ, reduced the intracellular ALP level, thereby inhibiting bone differentiation of rBMSCs. However, the above Hcy-related effects could be successfully reversed by mangiferin. Conclusion Mangiferin can significantly promote bone differentiation of rBMSCs in vitro, while Hcy can inhibit bone differentiation of rBMSCs and promote its lipid differentiation. Mangiferin has the ability to reverse this effect, indicating that mangiferin has certain potential in the treatment of osteoporosis-related diseases.
Key words: BMSC; mangiferin; homocysteine; lipid-differentiation; bone-differentiation
| 1 | 付银锋, 史栋梁, 马永胜, 等. 骨质疏松症外周血miR-141评价骨折风险的价值[J], 实用医学杂志, 2023, 39(4): 447-450. doi:10.3969/j.issn.1006-5725.2023.04.010 |
| 2 | 陈颖, 何柳柳, 邓伟民, 等. 唑来膦酸治疗原发性骨质疏松症的长期疗效[J], 实用医学杂志, 2023, 39(10): 1278-1284. doi:10.3969/j.issn.1006-5725.2023.10.016 |
| 3 | LIU J, GAO J, LIANG Z, et al. Mesenchymal stem cells and their microenvironment[J]. Stem Cell Res Ther, 2022, 13(1):429. doi:10.1186/s13287-022-02985-y |
| 4 | YU H, LIU P, ZHU D, et al. Chrysophanic acid shifts the differentiation tendency of BMSCs to prevent alcohol-induced osteonecrosis of the femoral head[J]. Cell Prolif, 2020, 53(8):e12871. doi:10.1111/cpr.12871 |
| 5 | 陈斌伟, 刘圣曜, 黄帅, 等. 辛伐他汀联合机械牵拉激活Wnt/β-catenin信号通路促进大鼠骨髓间充质干细胞成骨分化[J], 实用医学杂志, 2021, 37(1) : 41-45. |
| 6 | JIANG Y, ZHANG P, ZHANG X, et al. Advances in mesenchymal stem cell transplantation for the treatment of osteoporosis[J]. Cell Prolif, 2021, 54(1):e12956. doi:10.1111/cpr.12956 |
| 7 | HERMANN A, SITDIKOVA G. Homocysteine: Biochemistry, Molecular Biology and Role in Disease[J]. Biomolecules, 2021, 11(5):737. doi:10.3390/biom11050737 |
| 8 | ZHU Z, LIU C, LI X, et al. Association between plasma total homocysteine level within normal range and bone mineral density in adults[J]. J Orthop Surg Res, 2020, 15(1):475. doi:10.1186/s13018-020-02012-x |
| 9 | ILESANMI-OYELERE B L, KRUGER M C. B vitamins and homocysteine as determinants of bone health: A literature review of human studies[J]. J Hum Nutr Diet,2023, 36(3):1031-1044. doi:10.1111/jhn.13080 |
| 10 | ZHAO J, LU Q, ZHANG X. Associations of serum vitamin B12 and its biomarkers with musculoskeletal health in middle-aged and older adults[J]. Front Endocrinol (Lausanne), 2024, 15:1387035. doi:10.3389/fendo.2024.1387035 |
| 11 | ZIVKOVI? J, KUMAR K A, RUSHENDRAN R, et al. Pharmacological properties of mangiferin: bioavailability, mechanisms of action and clinical perspectives[J]. Naunyn Schmiedebergs Arch Pharmacol, 2024, 397(2):763-781. doi:10.1007/s00210-023-02682-4 |
| 12 | HE J, WANG X, ZHAO D, et al. Mangiferin promotes osteogenic differentiation and alleviates osteoporosis in the ovariectomized mouse via the AXL/ERK5 pathway[J]. Front Pharmacol, 2022, 13:1028932. doi:10.3389/fphar.2022.1028932 |
| 13 | SWAIN S, KODURU J R, RAUTRAY T R. Mangiferin-Enriched Mn-Hydroxyapatite Coupled with β-TCP Scaffolds Simultaneously Exhibit Osteogenicity and Anti-Bacterial Efficacy[J]. Materials (Basel), 2023, 16(6):2206. doi:10.3390/ma16062206 |
| 14 | GU Y, HU Y, HUANG S, et al. CpG ODN/Mangiferin Dual Delivery through Calcium Alginate Hydrogels Inhibits Immune-Mediated Osteoclastogenesis and Promotes Alveolar Bone Regeneration in Mice[J]. Biology (Basel), 2023, 12(7):976. doi:10.3390/biology12070976 |
| 15 | BAI Y, LIU C, FU L, et al. Mangiferin enhances endochondral ossification-based bone repair in massive bone defect by inducing autophagy through activating AMP-activated protein kinase signaling pathway[J]. FASEB J, 2018, 32(8):4573-4584. doi:10.1096/fj.201701411r |
| 16 | 王雪,杨娟,袁红,等. 丹参素冰片酯对同型半胱氨酸诱导大鼠骨髓间充质干细胞损伤的保护作用及机制 [J]. 中华心血管病杂志, 2017, 45(2):130-136. |
| 17 | 李小琴, 汪乐新, 马小军, 等. 高同型半胱氨酸经TRPC6/NF-κB诱导肾小球足细胞铁死亡的机制 [J]. 实用医学杂志, 2024,40(2):174-181. |
| 18 | YUAN D, CHU J, LIN H, et al. Mechanism of homocysteine-mediated endothelial injury and its consequences for atherosclerosis[J]. Front Cardiovasc Med, 2023, 9:1109445. doi:10.3389/fcvm.2022.1109445 |
| 19 | WANG C, ZHANG X, QIU B. Genetically predicted circulating serum homocysteine levels on osteoporosis: a two-sample mendelian randomization study[J]. Sci Rep, 2023, 13(1):9063. doi:10.1038/s41598-023-35472-2 |
| 20 | DE MARTINIS M, SIRUFO M M, NOCELLI C, et al. Hyperhomocysteinemia is Associated with Inflammation, Bone Resorption, Vitamin B12 and Folate Deficiency and MTHFR C677T Polymorphism in Postmenopausal Women with Decreased Bone Mineral Density[J]. Int J Environ Res Public Health, 2020, 17(12):4260. doi:10.3390/ijerph17124260 |
| 21 | ANAGNOSTIS P, FLORENTIN M, LIVADAS S, et al. Bone Health in Patients with Dyslipidemias: An Underestimated Aspect[J]. Int J Mol Sci, 2022, 23(3):1639. doi:10.3390/ijms23031639 |
| 22 | ALKAISSI H, MCFARLANE S I. Hyperhomocysteinemia and Accelerated Aging: The Pathogenic Role of Increased Homocysteine in Atherosclerosis, Osteoporosis, and Neurodegeneration[J]. Cureus, 2023, 15(7):e42259. |
| 23 | SELVARAJ V, SEKARAN S, DHANASEKARAN A, et al. Type 1 collagen: Synthesis, structure and key functions in bone mineralization[J]. Differentiation, 2024, 136:100757. doi:10.1016/j.diff.2024.100757 |
| 24 | WANG L, NIU H, ZHANG J. Homocysteine induces mitochondrial dysfunction and oxidative stress in myocardial ischemia/reperfusion injury through stimulating ROS production and the ERK1/2 signaling pathway[J]. Exp Ther Med, 2020, 20(2):938-944. doi:10.3892/etm.2020.8735 |
| 25 | CHU D T, PHUONG T N T, TIEN N L B, et al. An Update on the Progress of Isolation, Culture, Storage, and Clinical Application of Human Bone Marrow Mesenchymal Stem/Stromal Cells[J]. Int J Mol Sci, 2020, 21(3):708. doi:10.3390/ijms21030708 |
| 26 | DUTTA T, DAS T, GOPALAKRISHNAN A V, et al. Mangiferin: the miraculous xanthone with diverse pharmacological properties[J]. Naunyn Schmiedebergs Arch Pharmacol, 2023, 396(5):851-863. doi:10.1007/s00210-022-02373-6 |
| 27 | DENG X, LIN B, WANG F, et al. Mangiferin attenuates osteoporosis by inhibiting osteoblastic ferroptosis through Keap1/Nrf2/SLC7A11/GPX4 pathway[J]. Phytomedicine, 2024, 124:155282. doi:10.1016/j.phymed.2023.155282 |
| 28 | GU Y, ZHANG L, BAI Y. Mangiferin promotes the osteogenic differentiation of human periodontal ligament stem cells via TGF?β/SMAD2 signaling[J]. Mol Med Rep, 2022, 26(2):266. doi:10.3892/mmr.2022.12782 |
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